Fused Triphenylamine‐Terminated Self‐Assembled Hole‐Transporting Monolayers for Perovskite Solar Cells

ABSTRACT Conventional self‐assembled hole‐transporting monolayers (SAMs) in perovskite solar cells (PSCs) suffer molecular aggregation, uneven coverage on rough FTO substrates, and insufficient interfacial defect passivation. The design and application of novel SAMs have become an important approach to enhancing device efficiency and stability. Herein, two asymmetric π‐extended SAMs, named T‐4PACz and FT‐4PACz, based on 4PACz skeleton with a triphenylamine terminal, were designed. FT‐4PACz, featuring a fused triphenylamine terminal, suppresses aggregation via moderate π–π stacking and adopts a parallel orientation on FTO, enhancing interfacial bonding and shortening carrier transport paths. Its exposed central nitrogen lone‐pair electrons strongly coordinate with Pb 2+ , passivating defects and regulating perovskite crystallization into dense, pinhole‐free films. Optimized HOMO alignment further reduces the hole‐injection barrier. Consequently, the champion inverted PSCs based on FT‐4PACz achieve a power conversion efficiency of 26.76%, significantly outperforming those based on T‐4PACz (25.09%) and 4PACz (24.28%). The devices retain >90% of their initial efficiency after 1020 h at 85 °C in N 2 . This work provides a rational molecular design strategy for high‐performance, stable SAMs for PSCs.

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Publication Details

Journal
Advanced Energy Materials
Published
2026-09-12
DOI
https://doi.org/10.1002/aenm.71589
Primary Topic
Perovskite Materials and Applications
Type
article
Field-Weighted Citation Impact
0.00

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article

Fused Triphenylamine‐Terminated Self‐Assembled Hole‐Transporting Monolayers for Perovskite Solar Cells

Xuepeng Liu, Zhipeng Shao, Wenyong Feng, Hanqing Yang et al.
Advanced Energy Materials
Perovskite Materials and Applications
article

Fused Triphenylamine‐Terminated Self‐Assembled Hole‐Transporting Monolayers for Perovskite Solar Cells

Xuepeng Liu, Zhipeng Shao, Wenyong Feng, Hanqing Yang, Yong Ding, Zedong Lin, Liwen Zhang, Yanlei Li, Changqing Lin, Shuangwei Lv, Zheng Zou, Mingyuan Han, Shuzhang Yang, Botong Li
article en

Abstract

ABSTRACT Conventional self‐assembled hole‐transporting monolayers (SAMs) in perovskite solar cells (PSCs) suffer molecular aggregation, uneven coverage on rough FTO substrates, and insufficient interfacial defect passivation. The design and application of novel SAMs have become an important approach to enhancing device efficiency and stability. Herein, two asymmetric π‐extended SAMs, named T‐4PACz and FT‐4PACz, based on 4PACz skeleton with a triphenylamine terminal, were designed. FT‐4PACz, featuring a fused triphenylamine terminal, suppresses aggregation via moderate π–π stacking and adopts a parallel orientation on FTO, enhancing interfacial bonding and shortening carrier transport paths. Its exposed central nitrogen lone‐pair electrons strongly coordinate with Pb 2+ , passivating defects and regulating perovskite crystallization into dense, pinhole‐free films. Optimized HOMO alignment further reduces the hole‐injection barrier. Consequently, the champion inverted PSCs based on FT‐4PACz achieve a power conversion efficiency of 26.76%, significantly outperforming those based on T‐4PACz (25.09%) and 4PACz (24.28%). The devices retain >90% of their initial efficiency after 1020 h at 85 °C in N 2 . This work provides a rational molecular design strategy for high‐performance, stable SAMs for PSCs.

Advanced Energy Materials
Xinyang Normal University (CN), North China Electric Power University (CN), Jiaying University (CN), Hohai University (CN), Shenzhen Bay Laboratory (CN), Qingdao Institute of Bioenergy and Bioprocess Technology (CN), Taizhou University (CN)
National Natural Science Foundation of China, Natural Science Foundation of Shandong Province, State Key Laboratory of Advanced Technology for Materials Synthesis and Processing, Higher Education Discipline Innovation Project, Fundamental Research Funds for the Central Universities
Affordable and clean energy
Openalex Percentile: Top 20%
Perovskite Materials and Applications
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